15

If you have an opaque pointer typedef, is there a way to dynamically refer to the pointed-to type, say, for use in templates? For instance, say you have something like this:

struct Foo; // Forward declared struct
typedef Foo* FooPtr; // Opaque pointer

Because the smart pointer types are templates in terms of the pointer-to type, to define a std::shared_ptr of this, it seems that you have to say:

std::shared_ptr<struct Foo> theSharedPtr;

Is there any way to define such a pointer without "manually" unwrapping the opaque pointer typedef? I feel like I must be missing something obvious here, but you might imagine something like these (note: these do not work):

std::shared_ptr<*FooPtr> theSharedPointer;
// or
std::shared_ptr<pointedto(FooPtr)> theSharedPointer;

I feel like this should be possible. Am I missing something? I feel like this is an impending forehead-smacking moment...

EDIT: Noodling around some more, it appears that, in the common case, shared_ptr<T> wants to take the sizeof(T). You can get around this by providing a deleter to the constructor. I suspect this makes this a bit of an edge case, but it still seems like with all the type wrangling in C++, I should be able to "unwrap" a pointer type without doing so by hand.

23

In C++11:

#include <type_traits>

typedef std::shared_ptr< std::remove_pointer< FooPtr >::type > theSharedPtr;

In C++03 you can use boost::remove_pointer in the exact same way.

If you don't want to include boost, writing a remove_pointer metafunction is quite easy:

template<class T> struct remove_pointer;
template<class T> struct remove_pointer<T*> { typedef T type; };
  • 2
    Well considering you are using std::shared_ptr is obvious that you are in C++11... I'll leave the rest of my answer here anyway. – sbabbi Apr 3 '14 at 13:33
  • I like the completeness of the answer. – Lightness Races BY-SA 3.0 Apr 3 '14 at 13:33
5

Yes, since you are already using C++11 features, you can do this with type traits. Specifically by using std::remove_pointer:

std::remove_pointer<Foo*>::type; // Foo

Of course you'll need to include the specific standard header which is:

#include <type_traits>

to use it.

2

Is there any way to define such a pointer without "manually" unwrapping the opaque pointer typedef?

#include <type_traits>
std::shared_ptr<std::remove_pointer<FooPtr>::type> theSharedPointer;

it appears that, in the common case, shared_ptr<T> wants to take the sizeof(T).

It (probably) doesn't need the size; but its initialisation needs to create a deleter, for which the type needs to be complete.

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